COMMUNICATSON SYSTEM BASED ON THE GRAVITATIONAL FIELD USING FOR INFORMATION TRANSMISSION

С.В. Лєнков, O.O. Haisha, O.O. Haisha · Collection of scientific works of the Military Institute of Kyiv National Taras Shevchenko University · 2024

This study examines an innovative concept for transmitting information through gravitational interactions, presenting a fundamentally different approach from conventional electromagnetic communication systems. The authors propose a hypothetical model to explore the feasibility of utilizing gravitational forces for discrete signal transmission. The concept is illustrated through an analogy involving two individuals who cannot communicate visually or audibly, with using of a heavy ball, a rod, and a thread to exchange binary information. This method draws inspiration from Cavendish`s experiment, which measured gravitational forces and highlights the foundational physical principles underpinning the proposed communication system. The study acknowledges the practical challenges associated with implementing such a system, including high energy requirements, slow transmission speeds, and limited applicability in conventional scenarios. However, it emphasizes contexts where electromagnetic communication encounters significant limitations, such as in underground environments, through plasma layers, or in submarine communications. In such scenarios, the attenuation of electromagnetic signals presents substantial difficulties. Gravitational communication systems (GCS) offer a distinct advantage due to the universal and undistorted nature of gravitational forces, which remain unaffected by the medium or physical barriers. The paper further outlines a potential framework for the practical implementation of GCS, drawing comparisons to the principles of radio technologies. A spring pendulum is proposed as a receiver, leveraging mechanical resonance to detect subtle variations in gravitational force. The transmitter design involves the movement of massive bodies to modulate gravitational force magnitudes, thereby encoding binary signals. The authors discuss both static and dynamic methods for transmitting signals, emphasizing the benefits of dynamic oscillations in achieving resonance and effectively differentiating signal amplitudes. While the initial system is described as rudimentary, the study suggests that advancements in sensor technologies, materials science, and engineering could pave the way for GCS to become a viable solution in specialized applications. These applications could address critical communication needs in scenarios where traditional systems fail to operate effectively. This investigation opens new possibilities for harnessing gravitational interactions in communication technologies, potentially reshaping the paradigms of signal transmission in extreme or otherwise inaccessible environments.

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